Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station

In the face of the increasing depletion of non-renewable energy sources and increasingly serious environmental problems, the development of green and environmentally friendly renewable energy sources cannot be delayed. Because of the far-reaching development potential of solar energy, solar power ha...

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Main Authors: Jianwei Mi, Jie Du, Chengjian Liu, Xintong Li, Yiqun Zhang, Guanheng Fan
Format: Article
Language:English
Published: MDPI AG 2023-04-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/16/7/3247
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author Jianwei Mi
Jie Du
Chengjian Liu
Xintong Li
Yiqun Zhang
Guanheng Fan
author_facet Jianwei Mi
Jie Du
Chengjian Liu
Xintong Li
Yiqun Zhang
Guanheng Fan
author_sort Jianwei Mi
collection DOAJ
description In the face of the increasing depletion of non-renewable energy sources and increasingly serious environmental problems, the development of green and environmentally friendly renewable energy sources cannot be delayed. Because of the far-reaching development potential of solar energy, solar power has become an important research object for power development. The available solar energy in space is several times greater than that on Earth. Solar energy from space can be collected by a space solar power station (SSPS) and transmitted to the ground by wireless power transfer. In the full-chain ground-based validation system of SSPS-OMEGA, the spherical concentrator is used, and the light intensity distribution on the solar receiver is non-uniform. The non-uniform light intensity makes the output current of each photovoltaic (<i>PV</i>) cell on the solar receiver greatly different, and causes power losses, known as the mismatch problem. This paper proposes a simple, efficient and easy-to-implement method to optimize the structure of <i>PV</i> arrays to reduce the effect of non-uniform light on the output performance of each <i>PV</i> cell, which is beneficial to the topology of <i>PV</i> arrays and also effectively improves the layout rate. Then, a differential power processing (DPP) converter with a simple structure and easy control is designed to further deal with the power mismatch problem between series-connected <i>PV</i> modules. Finally, a simulation circuit model and a physical hardware model of the differential power processing <i>PV</i> system are built and used in the full-chain ground-based validation system of SSPS-OMEGA. The results demonstrate that the influence of non-uniform lighting on <i>PV</i> cells is effectively reduced, the output power of <i>PV</i> modules connected in series under non-uniform light distribution is substantially increased, and the photoelectric conversion efficiency is significantly improved.
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spelling doaj.art-58144bb26d674740a42474d9bc88c0452023-11-17T16:39:24ZengMDPI AGEnergies1996-10732023-04-01167324710.3390/en16073247Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power StationJianwei Mi0Jie Du1Chengjian Liu2Xintong Li3Yiqun Zhang4Guanheng Fan5Key Laboratory of Electronic Equipment Structural Design, Ministry of Education, Xidian University, Xi’an 710071, ChinaKey Laboratory of Electronic Equipment Structural Design, Ministry of Education, Xidian University, Xi’an 710071, ChinaKey Laboratory of Electronic Equipment Structural Design, Ministry of Education, Xidian University, Xi’an 710071, ChinaKey Laboratory of Electronic Equipment Structural Design, Ministry of Education, Xidian University, Xi’an 710071, ChinaKey Laboratory of Electronic Equipment Structural Design, Ministry of Education, Xidian University, Xi’an 710071, ChinaAcademy of Advanced Interdisciplinary Research, Xidian University, Xi’an 710071, ChinaIn the face of the increasing depletion of non-renewable energy sources and increasingly serious environmental problems, the development of green and environmentally friendly renewable energy sources cannot be delayed. Because of the far-reaching development potential of solar energy, solar power has become an important research object for power development. The available solar energy in space is several times greater than that on Earth. Solar energy from space can be collected by a space solar power station (SSPS) and transmitted to the ground by wireless power transfer. In the full-chain ground-based validation system of SSPS-OMEGA, the spherical concentrator is used, and the light intensity distribution on the solar receiver is non-uniform. The non-uniform light intensity makes the output current of each photovoltaic (<i>PV</i>) cell on the solar receiver greatly different, and causes power losses, known as the mismatch problem. This paper proposes a simple, efficient and easy-to-implement method to optimize the structure of <i>PV</i> arrays to reduce the effect of non-uniform light on the output performance of each <i>PV</i> cell, which is beneficial to the topology of <i>PV</i> arrays and also effectively improves the layout rate. Then, a differential power processing (DPP) converter with a simple structure and easy control is designed to further deal with the power mismatch problem between series-connected <i>PV</i> modules. Finally, a simulation circuit model and a physical hardware model of the differential power processing <i>PV</i> system are built and used in the full-chain ground-based validation system of SSPS-OMEGA. The results demonstrate that the influence of non-uniform lighting on <i>PV</i> cells is effectively reduced, the output power of <i>PV</i> modules connected in series under non-uniform light distribution is substantially increased, and the photoelectric conversion efficiency is significantly improved.https://www.mdpi.com/1996-1073/16/7/3247space solar power stationphotovoltaic systemstructure optimizationdifferential power processing
spellingShingle Jianwei Mi
Jie Du
Chengjian Liu
Xintong Li
Yiqun Zhang
Guanheng Fan
Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
Energies
space solar power station
photovoltaic system
structure optimization
differential power processing
title Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
title_full Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
title_fullStr Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
title_full_unstemmed Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
title_short Design and Optimization of Photovoltaic System in Full-Chain Ground-Based Validation System of Space Solar Power Station
title_sort design and optimization of photovoltaic system in full chain ground based validation system of space solar power station
topic space solar power station
photovoltaic system
structure optimization
differential power processing
url https://www.mdpi.com/1996-1073/16/7/3247
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